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Calculation of phrase probabilities for Statistical Machine Translation by using belief functions

机译:使用信念函数计算统计机器翻译的短语概率

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In this paper, we consider a specific part of statistical machine translation: feature estimation for the translation model. The classical way to estimate these features is based on relative frequencies. In this new approach, we propose to use the concept of belief masses to estimate the phrase translation probabilities. The Belief Function theory has proven to be suitable and adapted for dealing with uncertainties in many domains. We have performed a series of experiments to translate from English into French and from Arabic into English showing that our approach performs, at least as well as and at times better than, the classical approach.
机译:在本文中,我们考虑统计机器翻译的特定部分:翻译模型的特征估计。估计这些特征的经典方法是基于相对频率。在这种新方法中,我们建议使用置信质量的概念来估计短语翻译概率。信念函数理论已被证明适合并适用于处理许多领域的不确定性。我们进行了一系列实验,从英语翻译成法语,从阿拉伯语翻译成英语,这表明我们的方法至少比传统方法更好,有时甚至更好。

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